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基于情感生成对抗网络的短序列汉英机器翻译。

Short Sequence Chinese-English Machine Translation Based on Generative Adversarial Networks of Emotion.

机构信息

School of Journalism, Nanjing University of Finance & Economics, Jiangsu, Nanjing 210000, China.

出版信息

Comput Intell Neurosci. 2022 May 31;2022:3385477. doi: 10.1155/2022/3385477. eCollection 2022.

Abstract

With the steady growth of the global economy, the communication between countries in the world has become increasingly close. Due to its translation efficiency and other problems, the traditional manual translation has gradually failed to meet the current people's translation requirements. With the rapid development of machine-learning and deep-learning related technologies, artificial intelligence-related technologies have affected various industries, including the field of machine translation. Compared with traditional methods, neural network-based machine translation has high efficiency, so this field has attracted many scholars' intensive research. How to improve the accuracy of neural machine translation through deep learning technology is the core problem that researchers study. In this paper, the neural machine translation model based on generative adversarial network is studied to make the translation result of neural network more accurate and three-dimensional. The model uses adversarial thinking to consider the sequence of emotion direction so that the translation results are more humanized. We set up several experiments to verify the efficiency of the model, and the experimental results prove that the proposed model is suitable for Chinese-English machine translation.

摘要

随着全球经济的稳步增长,世界各国之间的交流日益紧密。由于其翻译效率等问题,传统的人工翻译逐渐无法满足当前人们的翻译需求。随着机器学习和深度学习相关技术的飞速发展,人工智能相关技术已经影响到了包括机器翻译领域在内的各个行业。与传统方法相比,基于神经网络的机器翻译具有高效率的特点,因此这个领域吸引了众多学者的深入研究。如何通过深度学习技术提高神经机器翻译的准确性是研究人员研究的核心问题。本文研究了基于生成对抗网络的神经机器翻译模型,使神经网络的翻译结果更加准确和立体。该模型采用对抗性思维来考虑情感方向的序列,使翻译结果更加人性化。我们设置了几个实验来验证模型的效率,实验结果证明,所提出的模型适用于汉英机器翻译。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d136/9173932/8da71c08d350/CIN2022-3385477.001.jpg

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